EP3138628A1 - Reactor - Google Patents
Reactor Download PDFInfo
- Publication number
- EP3138628A1 EP3138628A1 EP15836552.8A EP15836552A EP3138628A1 EP 3138628 A1 EP3138628 A1 EP 3138628A1 EP 15836552 A EP15836552 A EP 15836552A EP 3138628 A1 EP3138628 A1 EP 3138628A1
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- EP
- European Patent Office
- Prior art keywords
- reaction
- flow passage
- side flow
- heat medium
- fluid
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- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J19/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J19/24—Stationary reactors without moving elements inside
- B01J19/248—Reactors comprising multiple separated flow channels
- B01J19/249—Plate-type reactors
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F3/00—Plate-like or laminated elements; Assemblies of plate-like or laminated elements
- F28F3/02—Elements or assemblies thereof with means for increasing heat-transfer area, e.g. with fins, with recesses, with corrugations
- F28F3/025—Elements or assemblies thereof with means for increasing heat-transfer area, e.g. with fins, with recesses, with corrugations the means being corrugated, plate-like elements
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D53/00—Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
- B01D53/34—Chemical or biological purification of waste gases
- B01D53/74—General processes for purification of waste gases; Apparatus or devices specially adapted therefor
- B01D53/86—Catalytic processes
- B01D53/88—Handling or mounting catalysts
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J16/00—Chemical processes in general for reacting liquids with non- particulate solids, e.g. sheet material; Apparatus specially adapted therefor
- B01J16/005—Chemical processes in general for reacting liquids with non- particulate solids, e.g. sheet material; Apparatus specially adapted therefor in the presence of catalytically active bodies, e.g. porous plates
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J19/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J19/0006—Controlling or regulating processes
- B01J19/0013—Controlling the temperature of the process
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J19/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J19/24—Stationary reactors without moving elements inside
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D9/00—Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall
- F28D9/0062—Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall the conduits for one heat-exchange medium being formed by spaced plates with inserted elements
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F13/00—Arrangements for modifying heat-transfer, e.g. increasing, decreasing
- F28F13/06—Arrangements for modifying heat-transfer, e.g. increasing, decreasing by affecting the pattern of flow of the heat-exchange media
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F13/00—Arrangements for modifying heat-transfer, e.g. increasing, decreasing
- F28F13/06—Arrangements for modifying heat-transfer, e.g. increasing, decreasing by affecting the pattern of flow of the heat-exchange media
- F28F13/12—Arrangements for modifying heat-transfer, e.g. increasing, decreasing by affecting the pattern of flow of the heat-exchange media by creating turbulence, e.g. by stirring, by increasing the force of circulation
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F3/00—Plate-like or laminated elements; Assemblies of plate-like or laminated elements
- F28F3/02—Elements or assemblies thereof with means for increasing heat-transfer area, e.g. with fins, with recesses, with corrugations
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F3/00—Plate-like or laminated elements; Assemblies of plate-like or laminated elements
- F28F3/08—Elements constructed for building-up into stacks, e.g. capable of being taken apart for cleaning
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F9/00—Casings; Header boxes; Auxiliary supports for elements; Auxiliary members within casings
- F28F9/02—Header boxes; End plates
- F28F9/0219—Arrangements for sealing end plates into casing or header box; Header box sub-elements
- F28F9/0224—Header boxes formed by sealing end plates into covers
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J2219/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J2219/00049—Controlling or regulating processes
- B01J2219/00051—Controlling the temperature
- B01J2219/00074—Controlling the temperature by indirect heating or cooling employing heat exchange fluids
- B01J2219/00076—Controlling the temperature by indirect heating or cooling employing heat exchange fluids with heat exchange elements inside the reactor
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J2219/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J2219/24—Stationary reactors without moving elements inside
- B01J2219/2401—Reactors comprising multiple separate flow channels
- B01J2219/245—Plate-type reactors
- B01J2219/2461—Heat exchange aspects
- B01J2219/2462—Heat exchange aspects the reactants being in indirect heat exchange with a non reacting heat exchange medium
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D21/00—Heat-exchange apparatus not covered by any of the groups F28D1/00 - F28D20/00
- F28D2021/0019—Other heat exchangers for particular applications; Heat exchange systems not otherwise provided for
- F28D2021/0022—Other heat exchangers for particular applications; Heat exchange systems not otherwise provided for for chemical reactors
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F2250/00—Arrangements for modifying the flow of the heat exchange media, e.g. flow guiding means; Particular flow patterns
- F28F2250/04—Communication passages between channels
Definitions
- the present invention relates to a reactor of heat exchange type.
- the reactor of heat exchange type includes a reaction side flow passage functioning as a reaction field, and a heat medium side flow passage disposed in parallel with the reaction side flow passage while having a heat transfer partition interposed therebetween.
- the reaction fluid flows through the reaction side flow passage, and the heat medium circulates through the heat medium side flow passage for heat exchange with the reaction fluid.
- the reaction may be efficiently performed in the reaction side flow passage of the heat exchange type reactor.
- the stack type reactor has been developed, which is configured by stacking the reaction side flow passages and the heat medium side flow passages alternately (see Patent Literature 1).
- Patent Literature 1 Japanese Patent No. 5076353
- the generally employed stack type reactor is configured to expose the side surface of the reaction side flow passage to the outside, on which the heat medium side flow passage is not stacked.
- the heat dissipation may occur to the outside from the reaction side flow passage through the side surface, or heat inflow may occur from the outside into the reaction side flow passage through the side surface.
- the temperature around the side surface of the reaction side flow passage will deviate far from the temperature suitable for the reaction, thus deteriorating the reaction efficiency.
- the present invention has been made in view of such conventional problems. It is an object of the present invention to provide the reactor capable of suppressing heat dissipation to the outside from the reaction side flow passage, or heat inflow from the outside to the reaction side flow passage so as to improve reaction efficiency.
- a reactor includes: a plurality of reaction side flow passages through which flows a reaction fluid that is a fluid to be a reaction object; a catalyst disposed inside the reaction side flow passage to accelerate reaction of the reaction fluid; a plurality of heat medium side flow passages which is alternately stacked with the reaction side flow passages and through which flows a heat medium that is a fluid performing heat exchange with the reaction fluid flowing through the reaction side flow passage; and a suppression flow passage which is disposed adjacent to a surface of the reaction side flow passage, the heat medium side flow passage being not stacked on the surface, and through which flows a suppression fluid that is a fluid suppressing heat dissipation from the reaction fluid flowing through the reaction side flow passage to the outside, or heat transfer from the outside to the reaction fluid.
- the heat medium may flow, as the suppression fluid, through the suppression flow passage.
- the reactor may further include the communication part which allows the heat medium side flow passage and the suppression flow passage to communicate with each other.
- the heat medium may be introduced into the suppression flow passage from the heat medium side flow passage through the communication part.
- the present invention it is possible to suppress heat dissipation from the reaction side flow passage to the outside, or heat inflow from the outside to the reaction side flow passage, and to improve reaction efficiency.
- Fig. 1 is an explanatory view of a reactor 100 according to this embodiment.
- Fig. 2 is a view explaining a reaction side flow passage 210 and a heat medium side flow passage 220.
- X-axis, Y-axis, and Z-axis mutually crossing at right angles are defined as shown in Figs. 1 and 2 .
- offset fins 300 and catalyst structures 400 are omitted in Fig. 1 for easy understanding.
- the reactor 100 is configured by stacking a plurality of heat transfer partitions 110 spaced at predetermined intervals.
- the metal material for example, heat-resistant metal such as stainless steel (SUS, and the like), nickel (Ni) based alloy (Inconel ® , Hastelloy ® , Haynes ® )
- the heat transfer partitions 110 (there is also a case shown by 110a or 110b), a reaction fluid introduction member 120, a reaction fluid discharge member 122, a heat medium introduction member 130, and a heat medium discharge member 132, which constitute the reactor 100.
- the heat transfer partitions 110 are stacked and bonded with each other, and the top plate 102 is bonded to the uppermost heat transfer partition 110. Then, the stacked heat transfer partitions 110 are bonded to the reaction fluid introduction member 120, the reaction fluid discharge member 122, the heat medium introduction member 130, and the heat medium discharge member 132, respectively.
- the bonding method employed for manufacturing the reactor 100 is not restricted, TIG (Tungsten Inert Gas) welding or diffusion bonding is available, for example.
- the spaces partitioned by the heat transfer partitions 110 As shown in Fig. 1(b) , the spaces communicating with the reaction fluid introduction member 120 and the reaction fluid discharge member 122 via holes 210a formed on the sides of the reaction fluid introduction member 120 and the reaction fluid discharge member 122 serves as the reaction side flow passages 210. Further, of the spaces partitioned by the heat transfer partitions 110, as shown in Fig. 1(a) , the spaces communicating with the heat medium introduction member 130 and the heat medium discharge member 132 via holes 220a formed on the sides of the heat medium introduction member 130 and the heat medium discharge member 132 serves as the heat medium side flow passages 220.
- the reactor 100 includes the reaction side flow passages 210 and the heat medium side flow passages 220 which are partitioned by the heat transfer partitions 110 while being arranged in parallel with one another, and has the reaction side flow passages 210 and the heat medium side flow passages 220 alternately stacked.
- the heat transfer partition 110 (110a shown in Fig. 2(a) ) serves as the bottom surface of the heat medium side flow passage 220. Further, the top plate 102 or the heat transfer partition 110 to be described later (110b shown in Fig. 2(b) ) serves as the upper surface of the heat medium side flow passage 220. A plurality of ribs 112 is formed and erected on the heat transfer partition 110a for the purpose of retaining the gap between the heat transfer partitions 110a and 110b.
- the heat transfer partition 110a includes side walls 114 which form the side surfaces of the reactor 100, and side bars 116 erecting from the heat transfer partition for preventing mixture of the reaction fluid from the reaction fluid introduction member 120 and the reaction fluid discharge member 122.
- the heat medium side flow passage 220 is partitioned into a plurality of partition flow passages 222 which is arranged in parallel with one another in a direction orthogonal to the heat medium flowing direction.
- the side wall 114 at the side to which the heat medium introduction member 130 and the heat medium discharge member 132 are bonded has notched parts 114a.
- the notched parts 114a are designed to form the holes 220a (see Fig. 1 ) as the heat transfer partitions 110 are stacked. Then, the heat medium is introduced from the heat medium introduction member 130 into the heat medium side flow passage 220 via the holes 220a. Alternatively, the heat medium is discharged out of the heat medium side flow passage 220 to the heat medium discharge member 132 via the holes 220a.
- the partition flow passage 222 of the heat medium side flow passage 220 includes the metal offset fin 300 so as to stir the heat medium flowing through the partition flow passage 222 (the heat medium side flow passage 220) .
- This makes it possible to improve heat exchange efficiency between the heat medium and the reaction fluid which flows through the reaction side flow passage 210.
- the heat transfer partition 110b serves as the bottom surface of the reaction side flow passage 210.
- the heat transfer partition 110a (see Fig. 2(a) ) serves as the upper surface of the reaction side flow passage 210.
- the heat transfer partition 110b also includes a plurality of erected ribs 112 for retaining gaps between the heat transfer partitions 110 and the erected side walls 114.
- the reaction side flow passage 210 is partitioned by the ribs 112 into a plurality of partition flow passages 212 which is arranged in parallel with one another in a direction orthogonal to the reaction fluid flowing direction.
- the side bars 116 are not disposed on the heat transfer partition 110b.
- gaps 114b are formed between the two side walls 114.
- the gaps 114b are designed to form holes 210a (see Fig. 1 ) as the heat transfer partitions 110 are stacked.
- the reaction fluid is introduced from the reaction fluid introduction member 120 into the reaction side flow passages 210 via the holes 210a.
- the reaction product is discharged out of the reaction side flow passages 210 to the reaction fluid discharge member 122 via the holes 210a.
- the partition flow passage 212 which forms the reaction side flow passage 210 includes the catalyst structure 400 for accelerating reaction of the reaction fluid.
- the catalyst structure 400 is formed by fixing the catalyst supported on the carrier to the concavo-convex metal plate, that is, the corrugated metal plate.
- the metal plate for constituting the catalyst structure 400 is made of the heat-resistant alloy which contains Fe (iron), Cr (chromium), Al (aluminium), and Y (yttrium) as main components, for example, Fecralloy ® .
- the carrier of the catalyst may be appropriately selected in accordance with the reaction in the reactor 100, which may be at least one selected from the group including Al 2 O 3 (alumina), TiO 2 (titania), ZrO 2 (zirconia), CeO 2 (ceria), and SiO 2 (silica).
- the catalyst (active metal) is appropriately selected in accordance with the reaction in the reactor 100, for example, at least one selected from the group including Ni (nickel), Co (cobalt), Fe (iron), Pt (platinum), Ru (ruthenium), Rh (rhodium), and Pd (palladium).
- the heat transfer partition 110b includes bulkheads 118 each for connecting the outermost rib 112 (112A shown in Fig. 2 ) and the side wall 114.
- the bulkhead 118 forms the space (hereinafter referred to as a suppression flow passage 250) surrounded by the heat transfer partitions 110a, 110b, the rib 112A, the side wall 114, and the bulkhead 118.
- the suppression flow passage 250 is disposed adjacent to the surface of the reaction side flow passage 210, on which the heat medium side flow passage 220 is not stacked (the surface except the one on which the heat transfer partition 110 is disposed, that is, the rib 112A in this example).
- the suppression flow passages 250 are formed at both sides of the reaction side flow passage 210.
- communication parts 230 each as a through hole are formed in the areas of the heat transfer partition 110b, which form the suppression flow passage 250.
- communication parts 232 are formed in the areas of the heat transfer partition 110a, which constitutes the outermost partition flow passage 222 (222A shown in the drawing), that is, the upper surface of the suppression flow passage 250, which is formed as a result of stacking the heat transfer partitions 110. Functions of the suppression flow passage 250, and the communication parts 230 and 232 will be described in detail later.
- the reaction side flow passages 210 and the heat medium side flow passages 220 are formed in parallel with one another while being partitioned by the heat transfer partitions 110, the heat medium which flows through the heat medium side flow passages 220 exchanges heat with the reaction fluid that flows through the reaction side flow passages 210 via the heat transfer partitions 110.
- the heat medium side flow passage 220 and the heat medium supply heat to (heat) the reaction fluid that flows through the reaction side flow passage 210.
- the heat medium side flow passage 220 and the heat medium take heat from (cool) the reaction fluid that flows through the reaction side flow passage 210.
- the endothermic reaction may be exemplified by the steam reforming reaction of methane as expressed by the chemical formula (1), and dry reforming reaction of methane as expressed by the chemical formula (2), as follows.
- the exothermic reaction may be exemplified by the shift reaction as expressed by the chemical formula (3), the methanation reaction as expressed by the chemical formula (4), and FT (Fischer Tropsch) synthesis reaction as expressed by the chemical formula (5), as follows.
- CO + H 2 O ⁇ CO 2 + H 2 chemical formula (3) CO + 3H 2 ⁇ CH 4 + H 2 O chemical formula (4) (2n + 1)H 2 + nCO ⁇ C n H 2n+2 + nH 2 O chemical formula (5)
- reaction side flow passages 210 and the heat medium side flow passages 220 are stacked for heat exchange between the reaction fluid and the heat medium so that the reaction efficiently proceeds in the reaction side flow passages 210.
- the surface of the reaction side flow passage 210, on which the heat medium side flow passage 220 is not stacked (for example, the side wall 114) is exposed to the outside (outside air)
- heat dissipation occurs out of the reaction side flow passage 210 to the outside.
- the heat inflow occurs from the outside into the reaction side flow passage 210.
- Figs. 3(a) and 3(b) are top views of the heat transfer partition 110b, each explaining heat dissipation from the reaction side flow passage 210 to the outside as well as the suppression flow passages 250. Further, Fig. 3(a) is a view for explaining a reaction side flow passage 10 as a comparative example which does not include the suppression flow passage 250, and Fig. 3(b) is a view for explaining the reaction side flow passage 210 which includes the suppression flow passages 250 according to this embodiment. Note that, Fig. 3 omits showing the catalyst structure 400 for easy understanding. Furthermore, the following explanation may be exemplified by the case of endothermic reaction in the reaction side flow passage.
- the reaction side flow passage 10 as the comparative example includes a plurality of partition flow passages 12 extending along the X-axis.
- the partition flow passages 12A and 12G are disposed at the outermost positions along the Y-axis, which are partially partitioned by the side walls 114.
- the partition flow passages 12A and 12G are exposed to the outside air via the side walls 114.
- the partition flow passages 12B to 12F between the partition flow passages 12A and 12G are exposed to the reaction fluid or the heat medium via the ribs 112 or the heat transfer partitions 110.
- the reaction efficiency in the partition flow passages 12A and 12G will be lowered compared with the partition flow passages 12B to 12F.
- the resultant quantity of gas is lessened, thus reducing the pressure loss.
- the reaction fluid introduced into the reaction side flow passage 10 increasingly flows into the partition flow passages 12A and 12G more than the one flowing into the partition flow passages 12B to 12F. The reaction efficiency, thus, is further deteriorated.
- the reactor 100 also includes a plurality of partition flow passages 212 along the X-axis.
- the partition flow passages 212A and 212G are disposed at the outermost positions along the Y-axis, having the partition flow passages 212B to 212D interposed therebetween.
- the suppression flow passages 250 are disposed each adjacent to the surface (rib 112A) of the reaction side flow passage 210, on which the heat medium side flow passages 220 are not stacked.
- the heat medium (suppression fluid) flows through the suppression flow passages 250, which exposes the reaction fluid flowing through the reaction side flow passage 210 to the heat medium via the rib 112A.
- Fig. 4 is a partial sectional view (with respect to XZ sectional view) showing an area of the communication parts 230 and 232 of the reactor 100 for explaining the heat medium circulation mechanism in the suppression flow passage 250.
- the communication parts 230 are formed in the part of the heat transfer partition 110b corresponding to the suppression flow passage 250.
- the communication parts 232 are formed in the heat transfer partition 110a corresponding to the upper surface of the suppression flow passage 250 upon stacking.
- the heat medium introduced into the heat medium side flow passage 220 from the heat medium introduction member 130 flows through the heat medium side flow passage 220 as indicated by solid arrows in Fig. 4 .
- the heat medium is introduced into the suppression flow passage 250 formed above the heat transfer partition 110b through the communication part 230, and introduced into the suppression flow passage 250 formed below the heat transfer partition 110a through the communication parts 232. Then, the heat medium that has flowed through the suppression flow passage 250 is returned to the heat medium side flow passages 220 via the communication parts 230 and 232.
- the communication parts 230 and 232 serve to allow the heat medium to flow through the suppression flow passages 250 without providing additional structures.
- the defect generated in the joined part owing to the thermal stress in the case where the temperature suitable for the reaction is high (500°C or higher, for example).
- the temperature suitable for the reaction is high (500°C or higher, for example).
- the defect is generated in the joined part with the side wall 114 of the reactor 10 as the comparative example shown in Fig. 3(a) , outflow of the reaction fluid to the outside may occur, resulting in the risk of deteriorated reaction efficiency.
- the heat medium rather than the reaction fluid flows through the flow passage (suppression flow passage 250) which is exposed to the outside via the side wall 114.
- the structure according to the embodiment is capable of avoiding the outflow of the reaction fluid. This makes it possible to prevent deterioration in the reaction efficiency.
- reaction fluid and the reaction product as expressed by the chemical formulae (1) to (5) is combustible gas or toxic gas, outflow of the reaction fluid may be prevented to ensure safety of the working environment without providing additional structures.
- the reactor 100 is configured to dispose the suppression flow passage 250 adjacent to the surface of the reaction side flow passage 210, on which no flowing passages are stacked (Z-axis direction in the drawing). It is therefore possible to improve the reaction efficiency by suppressing heat dissipation to the outside from the reaction side flow passage 210, or the heat inflow to the reaction side flow passage 210 from the outside.
- this embodiment is configured to have two respective communication parts 230 and 232 formed in the single heat transfer partition 110.
- the number of the communication parts 230 and 232 or shapes thereof is not limited to those described above so long as the heat medium is allowed to be introduced into the suppression flow passage 250, or discharged therefrom through the communication parts 230 and 232.
- this embodiment is configured to have the communication parts 230 and 232 formed in the reactor 100.
- the communication parts 230 and 232 may be omitted so long as the heat medium is allowed to flow through the suppression flow passage 250.
- this embodiment is configured to allow the heat medium to flow through the suppression flow passage 250.
- any kind of fluid may be allowed to flow through the suppression flow passage 250 without being limited to the heat medium flowing through the heat medium side flow passage 220 so long as such fluid suppresses heat dissipation from the reaction fluid flowing through the reaction side flow passage 210 to the outside, or heat transfer from the outside to the reaction fluid.
- this embodiment is configured to suppress excessive heating (or cooling) of the partition flow passages 212A and 212E each adjacent to the suppression flow passage 250 without disposing the offset fin 300 on the suppression flow passage 250.
- this embodiment is configured to partition the reaction side flow passage 210 into partition flow passages 212. However, the reaction side flow passage 210 does not have to be partitioned into the partition flow passages 21. That is, it is possible to omit the ribs 112 in the reaction side flow passage 210. Further, this embodiment is configured to partition the heat medium side flow passage 220 into the partition flow passages 222. However, the heat medium side flow passage 220 does not have to be partitioned into the partition flow passages 222. In other words, it is possible to omit the ribs 112 in the heat medium side flow passage 220.
- this embodiment is configured to allow the reaction fluid flowing through the reaction side flow passage 210 and the heat medium flowing through the heat medium side flow passage 220 to flow as countercurrents. However, the reaction fluid and the heat medium are allowed to flow in a direction parallel with each other (that is, the reaction fluid and the heat medium flow in the same direction).
- the heat medium flowing through the heat medium side flow passage 220 may be in the gaseous state (for example, combustion exhaust gas), or in the liquid state.
- the heat medium in the gaseous state may be handled easier than the case of using the heat medium in the liquid state.
- the present invention may be applied to the reactor of heat exchange type.
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Abstract
Description
- The present invention relates to a reactor of heat exchange type.
- The reactor of heat exchange type includes a reaction side flow passage functioning as a reaction field, and a heat medium side flow passage disposed in parallel with the reaction side flow passage while having a heat transfer partition interposed therebetween. The reaction fluid flows through the reaction side flow passage, and the heat medium circulates through the heat medium side flow passage for heat exchange with the reaction fluid. The reaction may be efficiently performed in the reaction side flow passage of the heat exchange type reactor. As one of the above-described heat exchange type reactors, the stack type reactor has been developed, which is configured by stacking the reaction side flow passages and the heat medium side flow passages alternately (see Patent Literature 1).
- Patent Literature 1: Japanese Patent No.
5076353 - However, the generally employed stack type reactor is configured to expose the side surface of the reaction side flow passage to the outside, on which the heat medium side flow passage is not stacked. The heat dissipation may occur to the outside from the reaction side flow passage through the side surface, or heat inflow may occur from the outside into the reaction side flow passage through the side surface. As a result, the temperature around the side surface of the reaction side flow passage will deviate far from the temperature suitable for the reaction, thus deteriorating the reaction efficiency.
- The present invention has been made in view of such conventional problems. It is an object of the present invention to provide the reactor capable of suppressing heat dissipation to the outside from the reaction side flow passage, or heat inflow from the outside to the reaction side flow passage so as to improve reaction efficiency.
- A reactor according to an aspect of the present invention includes: a plurality of reaction side flow passages through which flows a reaction fluid that is a fluid to be a reaction object; a catalyst disposed inside the reaction side flow passage to accelerate reaction of the reaction fluid; a plurality of heat medium side flow passages which is alternately stacked with the reaction side flow passages and through which flows a heat medium that is a fluid performing heat exchange with the reaction fluid flowing through the reaction side flow passage; and a suppression flow passage which is disposed adjacent to a surface of the reaction side flow passage, the heat medium side flow passage being not stacked on the surface, and through which flows a suppression fluid that is a fluid suppressing heat dissipation from the reaction fluid flowing through the reaction side flow passage to the outside, or heat transfer from the outside to the reaction fluid.
- The heat medium may flow, as the suppression fluid, through the suppression flow passage.
- The reactor may further include the communication part which allows the heat medium side flow passage and the suppression flow passage to communicate with each other. The heat medium may be introduced into the suppression flow passage from the heat medium side flow passage through the communication part.
- According to the present invention, it is possible to suppress heat dissipation from the reaction side flow passage to the outside, or heat inflow from the outside to the reaction side flow passage, and to improve reaction efficiency.
-
- [
Fig. 1] Figs. 1(a) and 1(b) are explanatory views with respect to a reactor. - [
Fig. 2] Fig. 2(a) is an explanatory view of a heat medium side flow passage, andFig. 2 (b) is an explanatory view of a reaction side flow passage. - [
Fig. 3] Figs. 3(a) and 3(b) are explanatory views of heat dissipation from the reaction side flow passage to the outside. - [
Fig. 4] Fig. 4 is an explanatory view of a circulation mechanism of a heat medium in a suppression flow passage. - Hereinafter, an embodiment according to the present invention will be described in detail referring to accompanying drawings. The dimension, material, and any other specific values described in the embodiment are mere examples for easy understanding of the invention, and are never intended to restrict the present invention unless otherwise specified herein. Note that, in the specification and the drawings, the components with substantially the same functions and structures will be designated with the same codes, and overlapped explanations thereof will be omitted. The components which are not directly related to the present invention will also be omitted in the drawings.
-
Fig. 1 is an explanatory view of areactor 100 according to this embodiment.Fig. 2 is a view explaining a reactionside flow passage 210 and a heat mediumside flow passage 220. In this embodiment, X-axis, Y-axis, and Z-axis mutually crossing at right angles are defined as shown inFigs. 1 and2 . Further,offset fins 300 andcatalyst structures 400 are omitted inFig. 1 for easy understanding. - Referring to
Fig. 1 , thereactor 100 is configured by stacking a plurality ofheat transfer partitions 110 spaced at predetermined intervals. Further, the metal material (for example, heat-resistant metal such as stainless steel (SUS, and the like), nickel (Ni) based alloy (Inconel®, Hastelloy®, Haynes®)) is used for forming atop plate 102, the heat transfer partitions 110 (there is also a case shown by 110a or 110b), a reactionfluid introduction member 120, a reactionfluid discharge member 122, a heatmedium introduction member 130, and a heatmedium discharge member 132, which constitute thereactor 100. - In manufacturing the
reactor 100, theheat transfer partitions 110 are stacked and bonded with each other, and thetop plate 102 is bonded to the uppermostheat transfer partition 110. Then, the stackedheat transfer partitions 110 are bonded to the reactionfluid introduction member 120, the reactionfluid discharge member 122, the heatmedium introduction member 130, and the heatmedium discharge member 132, respectively. Although the bonding method employed for manufacturing thereactor 100 is not restricted, TIG (Tungsten Inert Gas) welding or diffusion bonding is available, for example. - Here, of spaces partitioned by the
heat transfer partitions 110, as shown inFig. 1(b) , the spaces communicating with the reactionfluid introduction member 120 and the reactionfluid discharge member 122 viaholes 210a formed on the sides of the reactionfluid introduction member 120 and the reactionfluid discharge member 122 serves as the reactionside flow passages 210. Further, of the spaces partitioned by theheat transfer partitions 110, as shown inFig. 1(a) , the spaces communicating with the heatmedium introduction member 130 and the heatmedium discharge member 132 viaholes 220a formed on the sides of the heatmedium introduction member 130 and the heatmedium discharge member 132 serves as the heat mediumside flow passages 220. In other words, thereactor 100 according to this embodiment includes the reactionside flow passages 210 and the heat mediumside flow passages 220 which are partitioned by theheat transfer partitions 110 while being arranged in parallel with one another, and has the reactionside flow passages 210 and the heat mediumside flow passages 220 alternately stacked. - As
Fig. 2(a) shows, the heat transfer partition 110 (110a shown inFig. 2(a) ) serves as the bottom surface of the heat mediumside flow passage 220. Further, thetop plate 102 or theheat transfer partition 110 to be described later (110b shown inFig. 2(b) ) serves as the upper surface of the heat mediumside flow passage 220. A plurality ofribs 112 is formed and erected on theheat transfer partition 110a for the purpose of retaining the gap between the 110a and 110b. Furthermore, theheat transfer partitions heat transfer partition 110a includesside walls 114 which form the side surfaces of thereactor 100, andside bars 116 erecting from the heat transfer partition for preventing mixture of the reaction fluid from the reactionfluid introduction member 120 and the reactionfluid discharge member 122. In other words, the heat mediumside flow passage 220 is partitioned into a plurality ofpartition flow passages 222 which is arranged in parallel with one another in a direction orthogonal to the heat medium flowing direction. - As
Fig. 2(a) shows, theside wall 114 at the side to which the heatmedium introduction member 130 and the heatmedium discharge member 132 are bonded has notchedparts 114a. The notchedparts 114a are designed to form theholes 220a (seeFig. 1 ) as theheat transfer partitions 110 are stacked. Then, the heat medium is introduced from the heatmedium introduction member 130 into the heat mediumside flow passage 220 via theholes 220a. Alternatively, the heat medium is discharged out of the heat mediumside flow passage 220 to the heatmedium discharge member 132 via theholes 220a. - Furthermore, as
Fig. 2 (a) shows, thepartition flow passage 222 of the heat mediumside flow passage 220 includes themetal offset fin 300 so as to stir the heat medium flowing through the partition flow passage 222 (the heat medium side flow passage 220) . This makes it possible to improve heat exchange efficiency between the heat medium and the reaction fluid which flows through the reactionside flow passage 210. - As
Fig. 2(b) shows, theheat transfer partition 110b serves as the bottom surface of the reactionside flow passage 210. Theheat transfer partition 110a (seeFig. 2(a) ) serves as the upper surface of the reactionside flow passage 210. Likewise theheat transfer partition 110a as described above, theheat transfer partition 110b also includes a plurality oferected ribs 112 for retaining gaps between theheat transfer partitions 110 and theerected side walls 114. In other words, the reactionside flow passage 210 is partitioned by theribs 112 into a plurality ofpartition flow passages 212 which is arranged in parallel with one another in a direction orthogonal to the reaction fluid flowing direction. - Note that, unlike the
heat transfer partition 110a, theside bars 116 are not disposed on theheat transfer partition 110b. As a result,gaps 114b are formed between the twoside walls 114. Thegaps 114b are designed to formholes 210a (seeFig. 1 ) as theheat transfer partitions 110 are stacked. Then, the reaction fluid is introduced from the reactionfluid introduction member 120 into the reactionside flow passages 210 via theholes 210a. Alternatively, the reaction product is discharged out of the reactionside flow passages 210 to the reactionfluid discharge member 122 via theholes 210a. - Furthermore, the
partition flow passage 212 which forms the reactionside flow passage 210 includes thecatalyst structure 400 for accelerating reaction of the reaction fluid. Thecatalyst structure 400 is formed by fixing the catalyst supported on the carrier to the concavo-convex metal plate, that is, the corrugated metal plate. Here, the metal plate for constituting thecatalyst structure 400 is made of the heat-resistant alloy which contains Fe (iron), Cr (chromium), Al (aluminium), and Y (yttrium) as main components, for example, Fecralloy®. Moreover, the carrier of the catalyst may be appropriately selected in accordance with the reaction in thereactor 100, which may be at least one selected from the group including Al2O3 (alumina), TiO2 (titania), ZrO2 (zirconia), CeO2 (ceria), and SiO2 (silica). In addition, the catalyst (active metal) is appropriately selected in accordance with the reaction in thereactor 100, for example, at least one selected from the group including Ni (nickel), Co (cobalt), Fe (iron), Pt (platinum), Ru (ruthenium), Rh (rhodium), and Pd (palladium). - Further, the
heat transfer partition 110b includesbulkheads 118 each for connecting the outermost rib 112 (112A shown inFig. 2 ) and theside wall 114. Thebulkhead 118 forms the space (hereinafter referred to as a suppression flow passage 250) surrounded by the 110a, 110b, theheat transfer partitions rib 112A, theside wall 114, and thebulkhead 118. In other words, thesuppression flow passage 250 is disposed adjacent to the surface of the reactionside flow passage 210, on which the heat mediumside flow passage 220 is not stacked (the surface except the one on which theheat transfer partition 110 is disposed, that is, therib 112A in this example). In other words, thesuppression flow passages 250 are formed at both sides of the reactionside flow passage 210. - Furthermore,
communication parts 230 each as a through hole are formed in the areas of theheat transfer partition 110b, which form thesuppression flow passage 250. Moreover,communication parts 232 are formed in the areas of theheat transfer partition 110a, which constitutes the outermost partition flow passage 222 (222A shown in the drawing), that is, the upper surface of thesuppression flow passage 250, which is formed as a result of stacking theheat transfer partitions 110. Functions of thesuppression flow passage 250, and the 230 and 232 will be described in detail later.communication parts - This embodiment will be described returning to
Figs. 1(a) and 1(b) . As solid arrows inFig. 1(a) indicate, the heat medium introduced from the heatmedium introduction member 130 flows through the heat medium side flowpassages 220, and is discharged from the heatmedium discharge member 132. Further, as dashed arrows inFig. 1(b) indicate, the reaction fluid (fluid to be reacted) introduced from the reactionfluid introduction member 120 flows through the reactionside flow passages 210, and is discharged from the reactionfluid discharge member 122. Here, as those drawings show, both the reaction fluid and the heat medium flow as countercurrents in this embodiment. - As described above, as the reaction
side flow passages 210 and the heat medium side flowpassages 220 are formed in parallel with one another while being partitioned by theheat transfer partitions 110, the heat medium which flows through the heat medium side flowpassages 220 exchanges heat with the reaction fluid that flows through the reactionside flow passages 210 via theheat transfer partitions 110. - In the case of endothermic reaction in the reaction
side flow passage 210, the heat mediumside flow passage 220 and the heat medium supply heat to (heat) the reaction fluid that flows through the reactionside flow passage 210. In the case of exothermic reaction in the reactionside flow passage 210, the heat mediumside flow passage 220 and the heat medium take heat from (cool) the reaction fluid that flows through the reactionside flow passage 210. - The endothermic reaction may be exemplified by the steam reforming reaction of methane as expressed by the chemical formula (1), and dry reforming reaction of methane as expressed by the chemical formula (2), as follows.
CH4 + H2O → 3H2 + CO chemical formula (1)
CH4 + CO2 → 2H2 + 2CO chemical formula (2)
- Further, the exothermic reaction may be exemplified by the shift reaction as expressed by the chemical formula (3), the methanation reaction as expressed by the chemical formula (4), and FT (Fischer Tropsch) synthesis reaction as expressed by the chemical formula (5), as follows.
CO + H2O → CO2 + H2 chemical formula (3)
CO + 3H2 → CH4 + H2O chemical formula (4)
(2n + 1)H2 + nCO → CnH2n+2 + nH2O chemical formula (5)
- As described above, the reaction
side flow passages 210 and the heat medium side flowpassages 220 are stacked for heat exchange between the reaction fluid and the heat medium so that the reaction efficiently proceeds in the reactionside flow passages 210. However, in the case where the surface of the reactionside flow passage 210, on which the heat mediumside flow passage 220 is not stacked (for example, the side wall 114) is exposed to the outside (outside air), heat dissipation occurs out of the reactionside flow passage 210 to the outside. Alternatively, the heat inflow occurs from the outside into the reactionside flow passage 210. -
Figs. 3(a) and 3(b) are top views of theheat transfer partition 110b, each explaining heat dissipation from the reactionside flow passage 210 to the outside as well as thesuppression flow passages 250. Further,Fig. 3(a) is a view for explaining a reactionside flow passage 10 as a comparative example which does not include thesuppression flow passage 250, andFig. 3(b) is a view for explaining the reactionside flow passage 210 which includes thesuppression flow passages 250 according to this embodiment. Note that,Fig. 3 omits showing thecatalyst structure 400 for easy understanding. Furthermore, the following explanation may be exemplified by the case of endothermic reaction in the reaction side flow passage. - As
Fig. 3 (a) shows, the reactionside flow passage 10 as the comparative example includes a plurality ofpartition flow passages 12 extending along the X-axis. Among thosepartition flow passages 12, the 12A and 12G are disposed at the outermost positions along the Y-axis, which are partially partitioned by thepartition flow passages side walls 114. In other words, the 12A and 12G are exposed to the outside air via thepartition flow passages side walls 114. Meanwhile, thepartition flow passages 12B to 12F between the 12A and 12G are exposed to the reaction fluid or the heat medium via thepartition flow passages ribs 112 or theheat transfer partitions 110. Accordingly, heat is dissipated to the outside (outside air) from the reaction fluid which flows through the 12A and 12G, temperatures of which become lower than those of thepartition flow passages partition flow passages 12B to 12F, resulting in deteriorated reaction efficiency. - Further, in the case where the reaction is performed in accordance with the chemical formulae (1) and (2) so that the reaction product has its volume (molar number) larger than the reaction fluid, for example, the reaction efficiency in the
12A and 12G will be lowered compared with thepartition flow passages partition flow passages 12B to 12F. The resultant quantity of gas is lessened, thus reducing the pressure loss. In this case, the reaction fluid introduced into the reactionside flow passage 10 increasingly flows into the 12A and 12G more than the one flowing into thepartition flow passages partition flow passages 12B to 12F. The reaction efficiency, thus, is further deteriorated. - On the contrary, as
Fig. 3 (b) shows, thereactor 100 according to this embodiment also includes a plurality ofpartition flow passages 212 along the X-axis. Among those partition flowpassages 212, thepartition flow passages 212A and 212G are disposed at the outermost positions along the Y-axis, having thepartition flow passages 212B to 212D interposed therebetween. The suppression flowpassages 250 are disposed each adjacent to the surface (rib 112A) of the reactionside flow passage 210, on which the heat medium side flowpassages 220 are not stacked. The heat medium (suppression fluid) flows through thesuppression flow passages 250, which exposes the reaction fluid flowing through the reactionside flow passage 210 to the heat medium via therib 112A. This ensures to suppress the heat dissipation to the outside from the reactionside flow passage 210, or heat transfer to the reaction fluid from the outside. As a result, temperature drop around the outermost 212A and 212E may be prevented, thus suppressing deterioration in the reaction efficiency.partition flow passages - Further, it is possible to reduce the difference in the gas quantity (pressure loss) between the
partition flow passages 212, which makes it possible to suppress deterioration in the reaction efficiency owing to the pressure loss difference. -
Fig. 4 is a partial sectional view (with respect to XZ sectional view) showing an area of the 230 and 232 of thecommunication parts reactor 100 for explaining the heat medium circulation mechanism in thesuppression flow passage 250. As described above, thecommunication parts 230 are formed in the part of theheat transfer partition 110b corresponding to thesuppression flow passage 250. Thecommunication parts 232 are formed in theheat transfer partition 110a corresponding to the upper surface of thesuppression flow passage 250 upon stacking. - Therefore, the heat medium introduced into the heat medium
side flow passage 220 from the heatmedium introduction member 130 flows through the heat mediumside flow passage 220 as indicated by solid arrows inFig. 4 . Further, referring to dashed arrows inFig. 4 , the heat medium is introduced into thesuppression flow passage 250 formed above theheat transfer partition 110b through thecommunication part 230, and introduced into thesuppression flow passage 250 formed below theheat transfer partition 110a through thecommunication parts 232. Then, the heat medium that has flowed through thesuppression flow passage 250 is returned to the heat medium side flowpassages 220 via the 230 and 232.communication parts - The
230 and 232 serve to allow the heat medium to flow through thecommunication parts suppression flow passages 250 without providing additional structures. - Further, there may be the case of the defect generated in the joined part owing to the thermal stress in the case where the temperature suitable for the reaction is high (500°C or higher, for example). For example, if the defect is generated in the joined part with the
side wall 114 of thereactor 10 as the comparative example shown inFig. 3(a) , outflow of the reaction fluid to the outside may occur, resulting in the risk of deteriorated reaction efficiency. However, in this embodiment, the heat medium rather than the reaction fluid flows through the flow passage (suppression flow passage 250) which is exposed to the outside via theside wall 114. Even if the defect is generated, the structure according to the embodiment is capable of avoiding the outflow of the reaction fluid. This makes it possible to prevent deterioration in the reaction efficiency. - Furthermore, even in the case where any one of or both of the reaction fluid and the reaction product as expressed by the chemical formulae (1) to (5) is combustible gas or toxic gas, outflow of the reaction fluid may be prevented to ensure safety of the working environment without providing additional structures.
- As described above, the
reactor 100 according to this embodiment is configured to dispose thesuppression flow passage 250 adjacent to the surface of the reactionside flow passage 210, on which no flowing passages are stacked (Z-axis direction in the drawing). It is therefore possible to improve the reaction efficiency by suppressing heat dissipation to the outside from the reactionside flow passage 210, or the heat inflow to the reactionside flow passage 210 from the outside. - The embodiment according to the present invention has been described above referring to the drawings. Obviously, however, the present invention is not limited to the above-described embodiment. The person skilled in the art will clearly understand that variations and modifications of the present invention may be made within the category described in claims, and they naturally belong to the technical scope of the present invention.
- For example, this embodiment is configured to have two
230 and 232 formed in the singlerespective communication parts heat transfer partition 110. However, the number of the 230 and 232 or shapes thereof is not limited to those described above so long as the heat medium is allowed to be introduced into thecommunication parts suppression flow passage 250, or discharged therefrom through the 230 and 232.communication parts - Further, this embodiment is configured to have the
230 and 232 formed in thecommunication parts reactor 100. However, the 230 and 232 may be omitted so long as the heat medium is allowed to flow through thecommunication parts suppression flow passage 250. For example, it is possible to provide the pipe (not shown) configured to communicate thesuppression flow passage 250 with the heat mediumside flow passage 220 via theside bar 116 and thebulkhead 118. - Furthermore, this embodiment is configured to allow the heat medium to flow through the
suppression flow passage 250. However, any kind of fluid (suppression fluid) may be allowed to flow through thesuppression flow passage 250 without being limited to the heat medium flowing through the heat mediumside flow passage 220 so long as such fluid suppresses heat dissipation from the reaction fluid flowing through the reactionside flow passage 210 to the outside, or heat transfer from the outside to the reaction fluid. - Moreover, this embodiment is configured to suppress excessive heating (or cooling) of the
212A and 212E each adjacent to thepartition flow passages suppression flow passage 250 without disposing the offsetfin 300 on thesuppression flow passage 250. However, it is possible to dispose the offsetfin 300 on thesuppression flow passage 250. - In addition, this embodiment is configured to partition the reaction
side flow passage 210 intopartition flow passages 212. However, the reactionside flow passage 210 does not have to be partitioned into the partition flow passages 21. That is, it is possible to omit theribs 112 in the reactionside flow passage 210. Further, this embodiment is configured to partition the heat mediumside flow passage 220 into thepartition flow passages 222. However, the heat mediumside flow passage 220 does not have to be partitioned into thepartition flow passages 222. In other words, it is possible to omit theribs 112 in the heat mediumside flow passage 220. - Additionally, this embodiment is configured to allow the reaction fluid flowing through the reaction
side flow passage 210 and the heat medium flowing through the heat mediumside flow passage 220 to flow as countercurrents. However, the reaction fluid and the heat medium are allowed to flow in a direction parallel with each other (that is, the reaction fluid and the heat medium flow in the same direction). - Further, the heat medium flowing through the heat medium
side flow passage 220 may be in the gaseous state (for example, combustion exhaust gas), or in the liquid state. However, the heat medium in the gaseous state may be handled easier than the case of using the heat medium in the liquid state. - The present invention may be applied to the reactor of heat exchange type.
Claims (3)
- A reactor comprising:a plurality of reaction side flow passages through which flows a reaction fluid that is a fluid to be a reaction object;a catalyst disposed inside the reaction side flow passage to accelerate reaction of the reaction fluid;a plurality of heat medium side flow passages which is alternately stacked with the reaction side flow passages and through which flows a heat medium that is a fluid performing heat exchange with the reaction fluid flowing through the reaction side flow passage; anda suppression flow passage which is disposed adjacent to a surface of the reaction side flow passage, the heat medium side flow passage being not stacked on the surface, and through which flows a suppression fluid that is a fluid suppressing heat dissipation from the reaction fluid flowing through the reaction side flow passage to the outside, or heat transfer from the outside to the reaction fluid.
- The reactor according to claim 1, wherein the heat medium flows, as the suppression fluid, through the suppression flow passage.
- The reactor according to claim 2, further comprisinga communication part which allows the heat medium side flow passage and the suppression flow passage to communicate with each other, whereinthe heat medium is introduced into the suppression flow passage from the heat medium side flow passage through the communication part.
Applications Claiming Priority (2)
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| PCT/JP2015/074177 WO2016031903A1 (en) | 2014-08-29 | 2015-08-27 | Reactor |
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| EP3138628A1 true EP3138628A1 (en) | 2017-03-08 |
| EP3138628A4 EP3138628A4 (en) | 2017-11-15 |
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| EP (1) | EP3138628A4 (en) |
| JP (1) | JP6439326B2 (en) |
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|---|---|---|---|---|
| EP3421123A1 (en) * | 2017-06-28 | 2019-01-02 | Commissariat à l'Energie Atomique et aux Energies Alternatives | Reactor-exchanger module with at least two fluid circuits produced by stacking of plates, applications to exothermic or endothermic catalytic reactions |
| FR3068451A1 (en) * | 2017-06-28 | 2019-01-04 | Commissariat A L'energie Atomique Et Aux Energies Alternatives | REACTOR-EXCHANGER MODULE HAVING AT LEAST TWO FLUID CIRCUITS PERFORMED BY PLATE STACKING APPLICATIONS TO EXOTHERMIC OR ENDOTHERMIC CATALYTIC REACTIONS |
Also Published As
| Publication number | Publication date |
|---|---|
| WO2016031903A1 (en) | 2016-03-03 |
| US20170072379A1 (en) | 2017-03-16 |
| JP2016049491A (en) | 2016-04-11 |
| JP6439326B2 (en) | 2018-12-19 |
| EP3138628A4 (en) | 2017-11-15 |
| US10258961B2 (en) | 2019-04-16 |
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